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Titlebook: Inverse and Crack Identification Problems in Engineering Mechanics; Georgios E. Stavroulakis Book 2001 Springer Science+Business Media Dor

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發(fā)表于 2025-3-21 18:26:09 | 只看該作者 |倒序?yàn)g覽 |閱讀模式
書目名稱Inverse and Crack Identification Problems in Engineering Mechanics
編輯Georgios E. Stavroulakis
視頻videohttp://file.papertrans.cn/475/474713/474713.mp4
叢書名稱Applied Optimization
圖書封面Titlebook: Inverse and Crack Identification Problems in Engineering Mechanics;  Georgios E. Stavroulakis Book 2001 Springer Science+Business Media Dor
描述Inverse and crack identification problems are of paramountimportance for health monitoring and quality control purposes arisingin critical applications in civil, aeronautical, nuclear, and generalmechanical engineering. Mathematical modeling and the numerical studyof these problems require high competence in computational mechanicsand applied optimization. This is the first monograph which providesthe reader with all the necessary information. Delicate computationalmechanics modeling, including nonsmooth unilateral contact effects, isdone using boundary element techniques, which have a certain advantagefor the construction of parametrized mechanical models. Bothelastostatic and harmonic or transient dynamic problems areconsidered. The inverse problems are formulated as output errorminimization problems and they are theoretically studied as a bileveloptimization problem, also known as a mathematical problem withequilibrium constraints. Beyond classical numerical optimization, softcomputing tools (neural networks and genetic algorithms) and filteralgorithms are used for the numerical solution. .The book provides all the required material for the mathematical andnumerical modeling of
出版日期Book 2001
關(guān)鍵詞algorithm; algorithms; construction; engineering mechanics; genetic algorithms; mathematical modeling; mec
版次1
doihttps://doi.org/10.1007/978-1-4615-0019-3
isbn_softcover978-1-4613-4888-7
isbn_ebook978-1-4615-0019-3Series ISSN 1384-6485
issn_series 1384-6485
copyrightSpringer Science+Business Media Dordrecht 2001
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Computational Mechanicsenergy function. The classical set of possibly nonlinear equations of mechanics from the one side, i.e., the compatibility equations, the equilibrium equations and the material laws, and, from the other side, the optimality conditions of the mathematical optimization theory are integrated in this ap
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Computational and Structural Optimizationbset of it. Several optimization problems arise in nature and they are known, mainly for historical reasons, as principles. The principles of minimum potential energy in statics, the maximum dissipation principle in dissipative media and the least action principle in dynamics are some examples (see,
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Selected Soft Computing Toolsse problems. Their success lies in the fact that they have the potential to overcome certain problems due to ill-conditioning or scaling, nonconvexity and nondifferentiability, as they arise in the considered applications and as they have been discussed in the previous Chapters. All these methods ar
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Transient Dynamicshe required loading for testing is not always easy (static loading), the efficiency of the procedure for a few test loadings is not sufficient (static loading) and nonlinear phenomena can not taken into account (harmonic elastodynamic modelling). The real time elastodynamic problem, which allows for
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e’s largest infrastructure scheme as a fundamentally extractivist green capitalist megaproject, we examine policing partnerships and mechanisms including the outsourcing of policing work to private contractors, formal arrangements, and on-the-ground collaboration. The policing of HS2, we argue, reli
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Georgios E. Stavroulakis and rapid take-up of the idea in the USA since the first breach notification law was enacted in California in 2002. Breach notification has been the subject of intense study around the world and has been recommended in many jurisdictions. Mandatory breach notification is poised to become the norm i
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